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首页> 外文期刊>Progress in Artificial Intelligence >Evaluating the suitability of the consumer low-cost Parrot Flower Power soil moisture sensor for scientific environmental applications
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Evaluating the suitability of the consumer low-cost Parrot Flower Power soil moisture sensor for scientific environmental applications

机译:评估消费者低成本鹦鹉花电力土壤水分传感器为科学环境应用的适用性

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摘要

Citizen science, scientific work and data collection conducted by or with non-experts, is rapidly growing. Although the potential of citizen science activities to generate enormous amounts of data otherwise not feasible is widely recognized, the obtained data are often treated with caution and scepticism. Their quality and reliability is not fully trusted since they are obtained by non-experts using low-cost instruments or scientifically non-verified methods. In this study, we evaluate the performance of Parrot's Flower Power soil moisture sensor used within the European citizen science project the GROW Observatory (GROW; https://growobservatory.org, last access: 30 March 2020). The aim of GROW is to enable scientists to validate satellite-based soil moisture products at an unprecedented high spatial resolution through crowdsourced data. To this end, it has mobilized thousands of citizens across Europe in science and climate actions, including hundreds who have been empowered to monitor soil moisture and other environmental variables within 24 high-density clusters around Europe covering different climate and soil conditions. Clearly, to serve as reference dataset, the quality of ground observations is crucial, especially if obtained from low-cost sensors. To investigate the accuracy of such measurements, the Flower Power sensors were evaluated in the lab and field. For the field trials, they were installed alongside professional soil moisture probes in the Hydrological Open Air Laboratory (HOAL) in Petzenkirchen, Austria. We assessed the skill of the low-cost sensors against the professional probes using various methods. Apart from common statistical metrics like correlation, bias, and root-mean-square difference, we investigated and compared the temporal stability, soil moisture memory, and the flagging statistics based on the International Soil Moisture Network (ISMN) quality indicators. We found a low intersensor variation in the lab and a high temporal agreement with the professional sensors in the field. The results of soil moisture memory and the ISMN quality flags analysis are in a comparable range for the low-cost and professional probes; only the temporal stability analysis shows a contrasting outcome. We demonstrate that low-cost sensors can be used to generate a dataset valuable for environmental monitoring and satellite validation and thus provide the basis for citizen-based soil moisture science.
机译:公民科学,科学工作和非专家进行的数据收集迅速增长。虽然公民科学活动的潜力避免了不可行的巨大数据,但得到了广泛认可的,但是获得所获得的数据通常会谨慎治疗和怀疑。他们的质量和可靠性并不完全信任,因为它们是由非专家使用低成本仪器或科学未经认证的方法获得的。在这项研究中,我们评估了欧洲公民科学项目中使用的鹦鹉的花电土壤水分传感器的性能,生长天文台(成长; https://growobservatory.org,上次访问:2020年3月30日)。增长的目的是使科学家能够通过众包数据以前所未有的高空间分辨率验证卫星的土壤水分产品。为此,它在科学和气候行动中调动了数千名欧洲公民,其中包括在欧洲周围的24个高密度集群内监测土壤湿度和其他环境变量的数百人。显然,用作参考数据集,地面观测的质量至关重要,特别是如果从低成本传感器获得。为了研究这种测量的准确性,在实验室和领域中评估了花动力传感器。对于现场试验,它们在奥地利Petzenkirchen的水文露天实验室(Hoal)旁边安装了专业的土壤水分探测器。我们使用各种方法评估了低成本传感器对专业探针的技能。除了常见的统计指标,如相关性,偏见和根均平方差异,我们研究并比较了基于国际土壤水分网络(ISMN)质量指标的时间稳定性,土壤水分记忆和标记统计数据。我们在实验室中发现了一个低的交叉体变化和与该领域的专业传感器的高度暂时协议。土壤湿气记忆和ISMN质量标志分析的结果是低成本和专业探头的可比范围;只有时间稳定性分析显示对比度结果。我们证明,低成本传感器可用于为环境监测和卫星验证产生有价值的数据集,从而为基于市民的土壤水分科学提供基础。

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